The phases of deuterium at extreme densities
arXiv:1007.1972 · doi:10.1007/JHEP04(2011)094
Abstract
We consider deuterium compressed to higher than atomic, but lower than nuclear densities. At such densities deuterium is a superconducting quantum liquid. Generically, two superconducting phases compete, a "ferromagnetic" and a "nematic" one. We provide a power counting argument suggesting that the dominant interactions in the deuteron liquid are perturbative (but screened) Coulomb interactions. At very high densities the ground state is determined by very small nuclear interaction effects that probably favor the ferromagnetic phase. At lower densities the symmetry of the theory is effectively enhanced to SU(3), and the quantum liquid enters a novel phase, neither ferromagnetic nor nematic. Our results can serve as a starting point for investigations of the phase dynamics of deuteron liquids, as well as exploration of the stability and dynamics of the rich variety of topological objects that may occur in phases of the deuteron quantum liquid, which range from Alice strings to spin skyrmions to Z_2 vortices.
9 pages, 6 figures; v2: fixed typos
References in corpus (8)
- A superconductor to superfluid phase transition in liquid metallic hydrogen
- Field- and temperature induced topological phase transitions in the three-dimensional -component London superconductor
- Observability of a projected new state of matter: a metallic superfluid
- Vortex sub-lattice melting in a two-component superconductor
- Observation of a metallic superfluid in a numerical experiment
- Charged Condensation
- Effective Lagrangian and Quantum Screening in Charged Condensate
- Vortex Structure in Charged Condensate